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一种超低功耗可编程模拟仿生耳处理器。

An ultra-low-power programmable analog bionic ear processor.

作者信息

Sarpeshkar Rahul, Salthouse Christopher, Sit Ji-Jon, Baker Michael W, Zhak Serhii M, Lu Timothy K T, Turicchia Lorenzo, Balster Stephanie

机构信息

Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

IEEE Trans Biomed Eng. 2005 Apr;52(4):711-27. doi: 10.1109/TBME.2005.844043.

DOI:10.1109/TBME.2005.844043
PMID:15825873
Abstract

We report a programmable analog bionic ear (cochlear implant) processor in a 1.5-microm BiCMOS technology with a power consumption of 211 microW and 77-dB dynamic range of operation. The 9.58 mm x 9.23 mm processor chip runs on a 2.8 V supply and has a power consumption that is lower than state-of-the-art analog-to-digital (A/D)-then-DSP designs by a factor of 25. It is suitable for use in fully implanted cochlear-implant systems of the future which require decades of operation on a 100-mAh rechargeable battery with a finite number of charge-discharge cycles. It may also be used as an ultra-low-power spectrum-analysis front end in portable speech-recognition systems. The power consumption of the processor includes the 100 microW power consumption of a JFET-buffered electret microphone and an associated on-chip microphone front end. An automatic gain control circuit compresses the 77-dB input dynamic range into a narrower internal dynamic range (IDR) of 57 dB at which each of the 16 spectral channels of the processor operate. The output bits of the processor are scanned and reported off chip in a format suitable for continuous-interleaved-sampling stimulation of electrodes. Power-supply-immune biasing circuits ensure robust operation of the processor in the high-RF-noise environment typical of cochlear implant systems.

摘要

我们报道了一款采用1.5微米BiCMOS技术的可编程模拟仿生耳(人工耳蜗)处理器,其功耗为211微瓦,工作动态范围为77分贝。这款9.58毫米×9.23毫米的处理器芯片采用2.8伏电源供电,其功耗比目前先进的模数(A/D)转换再经数字信号处理(DSP)的设计低25倍。它适用于未来的全植入式人工耳蜗系统,这类系统需要使用100毫安可充电电池运行数十年,且充放电循环次数有限。它还可作为便携式语音识别系统中的超低功耗频谱分析前端。该处理器的功耗包括一个结型场效应管(JFET)缓冲驻极体麦克风及其相关片上麦克风前端的100微瓦功耗。一个自动增益控制电路将77分贝的输入动态范围压缩到更窄的57分贝内部动态范围(IDR),处理器的16个频谱通道均在此范围内工作。处理器的输出位以适合电极连续交错采样刺激的格式进行片外扫描和报告。电源免疫偏置电路确保处理器在人工耳蜗系统典型的高射频噪声环境中稳健运行。

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